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Optimizing computational methods of modeling vertebroplasty in experimentally augmented human lumbar vertebrae
Author(s) -
Day Gavin A.,
Jones Alison C.,
Wilcox Ruth K.
Publication year - 2020
Publication title -
jor spine
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.125
0
ISSN - 2572-1143
DOI - 10.1002/jsp2.1077
Subject(s) - vertebra , stiffness , lumbar vertebrae , compression (physics) , lumbar , biomechanics , medicine , finite element method , orthodontics , biomedical engineering , radiology , materials science , surgery , structural engineering , anatomy , engineering , composite material
Vertebroplasty has been widely used for the treatment of osteoporotic compression fractures but the efficacy of the technique has been questioned by the outcomes of randomized clinical trials. Finite‐element (FE) models allow an investigation into the structural and geometric variation that affect the response to augmentation. However, current specimen‐specific FE models are limited due to their poor reproduction of cement augmentation behavior. The aims of this study were to develop new methods of modeling the vertebral body in both a nonaugmented and augmented state. Experimental tests were conducted using human lumbar spine vertebral specimens. These tests included micro‐computed tomography imaging, mechanical testing, augmentation with cement, reimaging, and retesting. Specimen‐specific FE models of the vertebrae were made comparing different approaches to capturing the bone material properties and to modeling the cement augmentation region. These methods significantly improved the modeling accuracy of nonaugmented vertebrae. Methods that used the registration of multiple images (pre‐ and post‐augmentation) of a vertebra achieved good agreement between augmented models and their experimental counterparts in terms of predictions of stiffness. Such models allow for further investigation into how vertebral variation influences the mechanical outcomes of vertebroplasty.

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